Loading...
Search for: pde-model
0.008 seconds

    Exact boundary controllability of vibrating non-classical Euler-Bernoulli micro-scale beams

    , Article Journal of Mathematical Analysis and Applications ; Vol. 418, issue. 2 , 2014 , pp. 985-997 ; ISSN: 0022247X Vatankhah, R ; Najafi, A ; Salarieh, H ; Alasty, A ; Sharif University of Technology
    Abstract
    This study investigates the exact controllability problem for a vibrating non-classical Euler-Bernoulli micro-beam whose governing partial differential equation (PDE) of motion is derived based on the non-classical continuum mechanics. In this paper, it is proved that via boundary controls, it is possible to obtain exact controllability which consists of driving the vibrating system to rest in finite time. This control objective is achieved based on the PDE model of the system which causes that spillover instabilities do not occur  

    Boundary stabilization of non-classical micro-scale beams

    , Article Applied Mathematical Modelling ; Volume 37, Issue 20-21 , 2013 , Pages 8709-8724 ; 0307904X (ISSN) Vatankhah, R ; Najafi, A ; Salarieh, H ; Alasty, A ; Sharif University of Technology
    2013
    Abstract
    In this paper, the problem of boundary stabilization of a vibrating non-classical micro-scale Euler-Bernoulli beam is considered. In non-classical micro-beams, the governing Partial Differential Equation (PDE) of motion is obtained based on the non-classical continuum mechanics which introduces material length scale parameters. In this research, linear boundary control laws are constructed to stabilize the free vibration of non-classical micro-beams which its governing PDE is derived based on the modified strain gradient theory as one of the most inclusive non-classical continuum theories. Well-posedness and asymptotic stabilization of the closed loop system are investigated for both cases... 

    Boundary control of temperature distribution in a rectangular FGM plate

    , Article ASME International Mechanical Engineering Congress and Exposition, Proceedings, 13 November 2009 through 19 November 2009, Lake Buena Vista, FL ; Volume 10, Issue PART B , 2010 , Pages 777-783 ; 9780791843833 (ISBN) Rastgoftar, H ; Gharib Shirangi, M ; Eghtesad, M ; Sharif University of Technology
    American Society of Mechanical Engineers (ASME)  2010
    Abstract
    In this paper an analytical method and a PDE-based solution to control temperature distribution in FGM plates is introduced. For the rectangular FGM plate under consideration, it is assumed that the material properties such as thermal conductivity, density, and specific heat capacity, vary in the width direction (y); and the governing heat conduction equation of the plate is a second-order partial differential equation. Since there has been little control synthesis work for PDE-based systems as compared to the abundance of control design techniques available for ordinary differential equations (ODEs), most of the proposed control approaches for continuous domain rely on discretizing the PDE... 

    Vibration boundary control of micro-cantilever timoshenko beam using piezoelectric actuators

    , Article Scientia Iranica ; Volume 25, Issue 2B , 2018 , Pages 711-720 ; 10263098 (ISSN) Mehrvarz, A ; Salarieh, H ; Alasty, A ; Vatankhah, R ; Sharif University of Technology
    Sharif University of Technology  2018
    Abstract
    One of the methods of force/moment exertion on micro beams is utilizing piezoelectric actuators. In this paper, considering the effects of the piezoelectric actuator on asymptotic stability achievement, the boundary control problem for the vibration of a clamped-free micro-cantilever Timoshenko beam is addressed. To achieve this purpose, the dynamic equations of the beam actuated by a piezoelectric layer laminated on one side of the beam are extracted. The control law was implemented so that vibrations of the beam could be decayed. This control law was achieved based on feedback of time derivatives of boundary states of the beam. The obtained control was applied in the form of piezoelectric...